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Turbomachinery blades damping thanks to optimized shuntedpiezoelectric circuits

机译:优化的并联压电电路使涡轮机械叶片减震

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Dynamics of gas-turbine blades are particularly aero-elastic coupling sensitive. These aerodynamic limits can be pushed away by adding extra damping to the structure in order to reach even better compressor performance. However nowadays design and manufacturing techniques in aero-mechanics are achieving their maximum of state-of-the-art.As in many fields active control would solve easily this kind of instability. But the difficulty remains in the needed energy supply for actuators whereas these components are aimed to be bonded on rotating structures. The capacity of different auto-supplied devices using shunted piezoelectric circuits had been studied here to prevent turbomachine bladed from fluttering.Before realizing the study on complex turbomachine geometries, the presented technique uses a numerical development thanks to a 1D Euler-Bernoulli beam model combining both mechanical and electrical coupling parameters. A second development thanks to a 3D model had been made using a commercial tool, Comsol software. These approximate models are used to optimize electrically the shunted piezoelectric element and its localization. The results, verified experimentally, let suppose that vibrations can be reduced significantly when shunted piezoelectric circuits are mounted on a real structure.
机译:燃气轮机叶片的动力学尤其对空气弹性耦合敏感。可以通过在结构上增加额外的阻尼来消除这些空气动力学极限,以达到更好的压缩机性能。然而,如今,航空机械的设计和制造技术正达到其最先进的水平。在许多领域中,主动控制将轻松解决这种不稳定性。但是困难仍然在于致动器所需的能量供应,而这些部件旨在结合在旋转结构上。为了防止涡轮机叶片颤动,这里研究了使用并联压电电路的各种自动设备的容量。在研究复杂的涡轮机几何形状之前,由于一维Euler-Bernoulli梁模型将这两种方法结合在一起,因此该技术在数值上得到了发展机械和电气耦合参数。由于使用了3​​D模型,因此使用商用工具Comsol软件进行了第二次开发。这些近似模型用于对分流压电元件及其局部进行电优化。通过实验验证的结果假设,当将并联压电电路安装在实际结构上时,可以显着降低振动。

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